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材料导报  2023, Vol. 37 Issue (19): 22020059-12    https://doi.org/10.11896/cldb.22020059
  高分子与聚合物基复合材料 |
连续纤维增强复合材料点阵结构成型工艺研究进展
冉旭东1,2, 黄树海1, 张鹏2, 韩振宇2, 周少兰1, 陈强1,*
1 西南技术工程研究所,重庆 400039
2 哈尔滨工业大学机电工程学院,哈尔滨 150001
Research Progress of Forming Process of Continuous Fiber Reinforced Polymer Composite Lattice Structure
RAN Xudong1,2, HUANG Shuhai1, ZHANG Peng2, HAN Zhenyu2, ZHOU Shaolan1, CHEN Qiang1,*
1 Southwest Technology and Engineering Research Institute, Chongqing 400039, China
2 School of Mechatronics Engineering, Harbin Institute of Technology, Harbin 150001, China
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摘要 连续纤维增强复合材料(Continuous fiber reinforced polymer composite,CFRP)具有比刚度与比强度高等优势,在航空航天、汽车电子及国防军工等领域得到了广泛的应用和关注。其中,复合材料点阵结构具有极高的结构效率,被广泛使用在轻质夹层结构中,发挥承载结构载荷的关键作用,但是因其结构复杂,大规模一体化制造轻质点阵仍是困扰科研人员的技术难题。本文介绍了连续纤维增强复合材料二维点阵、三维点阵结构的成型工艺,重点分析了不同点阵结构的成型工艺流程、工艺特点及结构破坏形式,综合对比各成型工艺优势与不足,对连续纤维增强复合材料点阵结构成型工艺进一步发展进行了展望。
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冉旭东
黄树海
张鹏
韩振宇
周少兰
陈强
关键词:  连续纤维增强复合材料  点阵结构  成型工艺    
Abstract: Continuous fiber reinforced polymer composite (CFRP) has the advantages of high specific stiffness and specific strength, and has been widely used in the fields of aerospace, automotive electronics, defense and military industries. Composite lattice structures have high structural efficiency and are widely used in lightweight sandwich structures, which play a key role in carrying structural loads. However, due to its complex structure, large-scale integrated manufacturing of lightweight lattice structures remains a technical challenge for researchers. This paper summarizes the forming process of continuous fiber reinforced composites 2D lattice and 3D lattice structures. Aiming at different forming processes of lattice structure, this paper analyzes the forming process, process characteristics and structural damage forms, and further comprehensively compares the advantages and disadvantages of each forming process. Finally, the future development of the continuous fiber reinforced composite lattice structures forming process is prospected.
Key words:  continuous fiber reinforced composite    lattice structure    forming process
出版日期:  2023-10-10      发布日期:  2023-09-28
ZTFLH:  TB332  
通讯作者:  *陈强,西南技术工程研究所教授级高级工程师,总工程师。本硕博毕业于哈尔滨工业大学,国防卓越青年基金获得者、国家“万人计划”科技创新领军人才,主持国防基础科研、装备预先研究、国家自然科学基金等国家级项目10余项;出版专著2部;发表SCI论文64篇;获授权国家发明专利47项,软件著作权6项。2009chenqiang@163.com   
作者简介:  冉旭东,2021年于哈尔滨工业大学获得硕士学位,现为西南技术工程研究所工程师,参与国防科研项目3项,发表SCI论文1篇,目前主要研究领域为纤维增强树脂基复合材料增材制造。
引用本文:    
冉旭东, 黄树海, 张鹏, 韩振宇, 周少兰, 陈强. 连续纤维增强复合材料点阵结构成型工艺研究进展[J]. 材料导报, 2023, 37(19): 22020059-12.
RAN Xudong, HUANG Shuhai, ZHANG Peng, HAN Zhenyu, ZHOU Shaolan, CHEN Qiang. Research Progress of Forming Process of Continuous Fiber Reinforced Polymer Composite Lattice Structure. Materials Reports, 2023, 37(19): 22020059-12.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.22020059  或          http://www.mater-rep.com/CN/Y2023/V37/I19/22020059
1 Akil H M, Omar M F, Mazuki A A M, et al. Materials & Design, 2011, 32(8-9), 4107.
2 Rajak D K, Pagar D D, Kumar R, et al. Journal of Materials Research and Technology, 2019, 8(6), 6354.
3 Jawaid M, Abdul Khalil H P S. Carbohydrate Polymers, 2011, 86(1), 1.
4 Maria M. Incas Bulletin, 2013, 5(3), 139.
5 Zhang X, Chen Y, Hu J. Progress in Aerospace Sciences, 2018, 97, 22.
6 Kushwaha S, Bagha A K. Materials Today:Proceedings, 2020, 26, 1567.
7 Evans A G, Hutchinson J W, Fleck N A, et al. Progress in Materials Science, 2001, 46(3), 309.
8 Deshpande V S, Ashby M F, Fleck N A. Acta Materialia, 2001, 49(6), 1035.
9 Fan H L, Meng F H, Yang W. Composite Structures, 2007, 81(4), 533.
10 Fan H L, Jin F N, Fang D N. Composites Science and Technology, 2008, 68(15-16), 3380.
11 Attard D, Farrugia P S, Gatt R, et al. International Journal of Mechanical Sciences, 2020, 179, 105631.
12 Chen J, Zhang X, Okabe Y, et al. Materials & Design, 2017, 131, 481.
13 Chen J, Zhang X, Okabe Y, et al. Science China Technological Sciences, 2019, 62(1), 87.
14 Fan H L, Jin F N, Fang D N. Materials & Design, 2009, 30(3), 511.
15 Fan H, Zeng T, Fang D, et al. Acta Mechanica Sinica, 2010, 26(6), 825.
16 Wang J, Evans A G, Dharmasena K, et al. International Journal of Solids and Structures, 2003, 40(25), 698.
17 Kooistra G W, Deshpande V S, Wadley H. Acta Materialia, 2004, 52(14), 4229.
18 Li X, Wu L, Ma L, et al. Mechanics of Advanced Materials and Structures, 2018, 26(10), 866.
19 Fu A, Fs B, Hst A. Materials Today Communications, 2020, 24, 101102.
20 Qi D, Yu H, Liu M, et al. International Journal of Mechanical Sciences, 2019, 163, 105091.
21 Han B, Zhang Z, Zhang Q, et al. Extreme Mechanics Letters, 2017, 10, 58.
22 Hu B, Wu L, Xiong J, et al. Mechanics of Materials, 2019, 129, 290.
23 Wu Q, Vaziri A, Asl M E, et al. Journal of the Mechanics and Physics of Solids, 2019, 125, 112.
24 Liu Y, Dong Z, Liang J, et al. International Journal of Mechanical Sciences, 2019, 152, 568.
25 Zhang J, Lu G, You ZComposites Part B:Engineering, 2020, 201, 108340.
26 Luo Y, Fan H. Thin-Walled Structures, 2018, 125, 100.
27 Xu F, Zhang X, Zhang H. Engineering Structures, 2018, 171, 309.
28 Hu B, Wu L, Xiong J, et al. Mechanics of Materials, 2019, 129, 290.
29 Xue R, Cui X, Zhang P, et al. Extreme Mechanics Letters, 2020, 40, 100918.
30 Rong Y, Liu J, Luo W, et al. Composites Part B:Engineering, 2018, 152, 324.
31 An X, Lai C, He W, et al. Extreme Mechanics Letters, 2019, 33, 100577.
32 Wang Y, Ramirez B, Carpenter K, et al. Extreme Mechanics Letters, 2019, 33, 100557.
33 Xu G, Zeng T, Cheng S, et al. Composite Structures, 2019, 229, 111466.
34 An X, Fan H, Zhang C. Journal of Sound and Vibration, 2020, 475, 115292.
35 An X, Lai C, Fan H, et al. International Journal of Solids and Structures, 2020, 191-192, 293.
36 Qiao J X, Chen C Q. International Journal of Impact Engineering, 2015, 83, 47.
37 Hoo Fatt M S, Sirivolu D. Marine Structures, 2017, 56, 163.
38 Rong Y, Liu J, Luo W, et al. Composites Part B:Engineering, 2018, 152, 324.
39 Zhang X, An C, Shen Z, et al. Materials Today Communications, 2020, 23, 100918.
40 Lu Q, Qi D, Ying L, et al. Thin-Walled Structures, 2019, 140, 495.
41 Yan H, Yang X, Lu T, et al. Applied Thermal Engineering, 2017, 127, 1293.
42 Yan H, Zhang Q, Chen W, et al. Applied Thermal Engineering, 2020, 166, 114687.
43 Wang X, Wei K, Wang K, et al. Applied Thermal Engineering, 2020, 173, 115205.
44 Stocchi A, Colabella L, Cisilino A, et al. Materials & Design, 2014, 55, 394.
45 Vitale J P, Francucci G, Stocchi A. Journal of Sandwich Structures & Materials, 2016, 19(1), 66.
46 Wei X, Li D, Xiong J. Composites Science and Technology, 2019, 184, 107878.
47 Wei X, Wu Q, Gao Y, et al. Mechanics of Materials, 2020, 148, 103401.
48 Liu J, Liu J, Mei J, et al. Composites Science and Technology, 2018, 159, 87.
49 Jiang S, Sun F, Zhang X, et al. Composite Structures, 2017, 176, 55.
50 Yu G, Feng L, Wu L. Materials & Design, 2016, 102, 238.
51 Feng L, Yang Z, Yu G, et al. Composite Structures, 2018, 201, 845.
52 Wu H, Lai C, Sun F, et al. Acta Astronautica, 2018, 145, 268.
53 Li M, Sun F, Lai C, et al. Composites Science and Technology, 2018, 157, 152.
54 Hou Z, Tian X, Zhang J, et al. Composite Structures, 2018, 184, 1005.
55 Quan C, Han B, Hou Z, et al. Composites Part B:Engineering, 2020, 187, 107858.
56 Sugiyama K, Matsuzaki R, Ueda M, et al. Composites Part A:Applied Science and Manufacturing, 2018, 113, 114.
57 Xiong J, Ma L, Wu L, et al. Composite Structures, 2010, 92(11), 2695.
58 Yin S, Wu L, Ma L, et al. Composite Structures, 2011, 93(12), 3104.
59 Mei J, Liu J, Liu J. Composites Part A:Applied Science and Manufacturing, 2017, 102, 28.
60 Liu J, Qiao W, Liu J, et al. Composites Part A:Applied Science and Manufacturing, 2015, 73, 93.
61 Zhang G, Ma L, Wang B, et al. Composites Part B:Engineering, 2012, 43(2), 471.
62 Wang B, Wu L, Ma L, et al. Materials & Design, 2010, 31(5), 2659.
63 Ming L L W L. Journal of Materials Science & Technology, 2011, 27(6), 570.
64 Yin S, Li J, Liu B, et al. Composite Structures, 2017, 160, 1147.
65 Schneider C, Velea M N, Kazemahvazi S, et al. Materials & Design (1980-2015), 2015, 65, 1110.
66 Hu Y, Li W, An X, et al. Composites Science and Technology, 2016, 125, 114.
67 Li W, Sun F, Wang P, et al. Composites Part A:Applied Science and Manufacturing, 2016, 81, 313.
68 George T, Deshpande V S, Wadley H N G. Composites Part A:Applied Science and Manufacturing, 2013, 47, 31.
69 K F, G K, Hng W, et al. International Journal of Materials Research, 2007, 98(12), 1264.
70 Feng L, Wu L, Yu G. Materials & Design, 2016, 99, 581.
71 Wu Q, Ma L, Wu L, et al. Composite Structures, 2016, 153, 585.
72 Dong L, Wadley H. Composites Science and Technology, 2015, 119, 26.
73 Dong L, Wadley H. Composites Part A:Applied Science and Manufacturing, 2016, 81, 182.
74 Xu B, Yin S, Wang Y, et al. Composites Part A:Applied Science and Manufacturing, 2017, 97, 41.
75 Liu X, Alizadeh V, Hansen C J. Composite Structures, 2020, 239, 111999.
76 Li X, Wu L, Ma L, et al. Theoretical and Applied Mechanics Letters, 2016, 6(2), 76.
77 Xiong J, Vaziri A, Ghosh R, et al. Extreme Mechanics Letters, 2016, 7, 114.
78 Xu G, Zhai J, Zeng T, et al. Composite Structures, 2015, 119, 666.
79 Hu J, Liu A, Zhu S, et al. Composite Structures, 2020, 251, 112659.
80 Hu J, Zhu S, Wang B, et al. Journal of Sandwich Structures & Materials, 2021, 23(6), 2422.
81 Kim H, Cho B H, Hur H, et al. Materials & Design, 2015, 65, 231.
82 Lee B, Lee K, Byun J, et al. Composites Part B:Engineering, 2012, 43(2), 317.
83 Sun Y, Li Y. Composites Science and Technology, 2017, 150, 95.
84 Du Y, Song C, Xiong J, et al. Composites Science and Technology, 2019, 174, 94.
85 Li W, Zheng Q, Fan H, et al. Engineering, 2020, 6(2), 196.
86 Lai C, Wang J, Liu C, et al. Composites Science and Technology, 2015, 113, 63.
87 Mohammadi M, Sadeghi A. Proceedings of the Institution of Mechanical Engineers, Part E:Journal of Process Mechanical Engineering, 2020, 234(2), 222.
88 Liu S, Li Y, Li N. Materials & Design, 2018, 137, 235.
89 Hunt C J, Morabito F, Grace C, et al. Composite Structures, 2022, 284, 115120.
90 Liu G, Xiong Y, Zhou L, Composites Communications, 2021, 27, 100907.
91 Li N, Link G, Jelonnek J. CIRP Annals-Manufacturing Technology, 2020, 69(1), 221.
92 Chen X, Fang G, Liao W H, et al, Additive Manufacturing, 2022, 49, 102470.
93 Li N, Link G, Wang T, et al. Composites Part B:Engineering, 2020, 182(C), 107612.
94 Zhang H, Chen J, Yang D. Additive Manufacturing, 2021, 38, 101775.
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